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When I used printf("%.6g\n",36.666666662);, i expected the output 36.666667. But the actual output is 36.6667

What is wrong with the format I have given? My aim is to have 6 decimal digits

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1 Answer 1

up vote 11 down vote accepted

This is correct behaviour.

For a, A, e, E, f and F specifiers: this is the number of digits to be printed after the decimal point.

For g and G specifiers: This is the maximum number of significant digits to be printed.

If you use f instead of g then it will work as you expected.


Example code

#include <stdio.h>

int main(void) {
    printf("%.6g\n", 36.666666662);
    printf("%.6f\n", 36.666666662);
    return 0;
}

Result

36.6667
36.666667

See it working online: ideone.

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cplusplus.com is not "the documentation" and in fact has wrong information about a number of interfaces; a quick example that comes to mind, unless they've since fixed it, is the return value of scanf. If you're going to make "the documentation" a link, it should point to the C standard or the equivalent language in POSIX (which is easier to link to). –  R.. Dec 14 '12 at 13:36
    
@R..: Good point, I removed the link. Thanks for the comment. –  Mark Byers Dec 14 '12 at 13:40

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